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Wettability of ZnO: A comparison of reactively sputtered; thermally oxidized and vacuum annealed coatings

机译:ZnO的润湿性:反应溅射的比较;热氧化和真空退火涂层

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We have studied the wettability of sputter deposited ZnO, thermally oxidized Zn-ZnO and vacuum annealed ZnO coatings. The X-ray diffraction patterns showed the formation of hexagonal-wurtzite structure of ZnO, which was further confirmed by micro-Raman spectroscopy data. The X-ray photoelectron spectroscopy data indicated that the sputter deposited ZnO coatings were more stoichiometric than thermally oxidized Zn-ZnO and vacuum annealed ZnO coatings. The wettability measurements indicated that water contact angles of 158.5° and 155.2° with sliding angles of 2° and 4° were achieved for thermally oxidized Zn-ZnO and vacuum annealed ZnO coatings, respectively. The superhydrophobicity observed in thermally oxidized Zn-ZnO and vacuum annealed coatings is attributed to the nanorod cluster like morphology along with the presence of high fraction of micron scale air pockets. The water droplet on such surfaces is mostly in contact with air pockets rather than solid surface, leading to high contact angle. Whereas, the sputter deposited ZnO coatings exhibited a maximum water contact angle of 110.3°. This is because the sputter deposited ZnO coatings exhibited a densely packed nanograin-like microstructure without any air pockets. The work of adhesion of water was very low for thermally oxidized Zn-ZnO (5.06 mJ/m~2) and vacuum annealed ZnO coatings (6.71 mJ/m~2) when compared to reactively sputtered ZnO coatings (90.41 mJ/m~2). The apparent surface free energy (SFE) for these coatings was calculated using Neumann method and the SFE values for sputter deposited ZnO, thermally oxidized Zn-ZnO and vacuum annealed ZnO coatings were 32.95,23.21 and 18.78 mJ/m~2, respectively.
机译:我们研究了溅射沉积的ZnO,热氧化的Zn-ZnO和真空退火的ZnO涂层的润湿性。 X射线衍射图表明形成了ZnO的六方纤锌矿结构,这进一步由显微拉曼光谱数据证实。 X射线光电子能谱数据表明,溅射沉积的ZnO涂层比热氧化的Zn-ZnO和真空退火的ZnO涂层具有更高的化学计量。润湿性测量表明,对于热氧化的Zn-ZnO涂层和真空退火的ZnO涂层,分别达到158.5°和155.2°的水接触角以及2°和4°的滑动角。在热氧化的Zn-ZnO和真空退火的涂层中观察到的超疏水性归因于纳米棒簇状形态,以及高比例的微米级气穴的存在。这种表面上的水滴大多与气穴接触,而不是与固体表面接触,从而导致高接触角。而溅射沉积的ZnO涂层的最大水接触角为110.3°。这是因为溅射沉积的ZnO涂层显示出紧密堆积的纳米颗粒状微结构,没有任何气穴。与反应溅射的ZnO涂层(90.41 mJ / m〜2)相比,热氧化Zn-ZnO(5.06 mJ / m〜2)和真空退火的ZnO涂层(6.71 mJ / m〜2)的水附着力非常低。 )。使用Neumann方法计算了这些涂层的表观表面自由能(SFE),溅射沉积ZnO,热氧化Zn-ZnO和真空退火ZnO涂层的SFE值分别为32.95、23.21和18.78 mJ / m〜2。

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